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信号放大级联中离散噪声与非线性化学动力学之间的相互作用。

The interplay between discrete noise and nonlinear chemical kinetics in a signal amplification cascade.

作者信息

Lan Yueheng, Papoian Garegin A

机构信息

Department of Chemistry, University of North Carolina at Chapel Hill, North Carolina 27599-3290, USA.

出版信息

J Chem Phys. 2006 Oct 21;125(15):154901. doi: 10.1063/1.2358342.

Abstract

We used various analytical and numerical techniques to elucidate signal propagation in a small enzymatic cascade which is subjected to external and internal noises. The nonlinear character of catalytic reactions, which underlie protein signal transduction cascades, renders stochastic signaling dynamics in cytosol biochemical networks distinct from the usual description of stochastic dynamics in gene regulatory networks. For a simple two-step enzymatic cascade which underlies many important protein signaling pathways, we demonstrated that the commonly used techniques such as the linear noise approximation and the Langevin equation become inadequate when the number of proteins becomes too low. Consequently, we developed a new analytical approximation, based on mixing the generating function and distribution function approaches, to the solution of the master equation that describes nonlinear chemical signaling kinetics for this important class of biochemical reactions. Our techniques work in a much wider range of protein number fluctuations than the methods used previously. We found that under certain conditions the burst phase noise may be injected into the downstream signaling network dynamics, resulting possibly in unusually large macroscopic fluctuations. In addition to computing first and second moments, which is the goal of commonly used analytical techniques, our new approach provides the full time-dependent probability distributions of the colored non-Gaussian processes in a nonlinear signal transduction cascade.

摘要

我们运用了各种分析和数值技术来阐明小型酶促级联反应中的信号传播,该级联反应会受到外部和内部噪声的影响。催化反应的非线性特性是蛋白质信号转导级联反应的基础,这使得细胞质生化网络中的随机信号动力学不同于基因调控网络中随机动力学的常规描述。对于构成许多重要蛋白质信号通路基础的简单两步酶促级联反应,我们证明当蛋白质数量变得过低时,常用技术如线性噪声近似和朗之万方程就不再适用。因此,我们基于生成函数和分布函数方法的混合,开发了一种新的解析近似方法,用于求解描述此类重要生化反应非线性化学信号动力学的主方程。我们的技术在蛋白质数量波动范围比以前使用的方法大得多的情况下也能发挥作用。我们发现,在某些条件下,爆发期噪声可能会注入下游信号网络动力学,从而可能导致异常大的宏观波动。除了计算常用分析技术的目标——一阶矩和二阶矩之外,我们的新方法还提供了非线性信号转导级联反应中有色非高斯过程的完整时间相关概率分布。

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